| Literature DB >> 29947133 |
Zhengran Yi1,2, Yingying Jiang3,4, Long Xu1, Cheng Zhong5, Jie Yang1, Qijun Wang1, Junwu Xiao1, Xueming Liao5, Shuai Wang1, Yunlong Guo3,4, Wenping Hu6, Yunqi Liu3,4.
Abstract
The exploration of novel molecular architectures is crucial for the design of high-performance ambipolar polymer semiconductors. Here, a "triple-acceptors architecture" strategy to design the ambipolar polymer DPP-2T-DPP-TBT is introduced. The utilization of this architecture enables DPP-2T-DPP-TBT to achieve deep-lying highest occupied molecular orbital (HOMO)/lowest unoccupied molecular orbital (LUMO) levels of -5.38/-4.19 eV, and strong intermolecular interactions, which are favorable for hole/electron injection and intermolecular hopping through π-stacking. All these factors result in excellent ambipolar transport characteristics and promising applications in complementary-like circuits for DPP-2T-DPP-TBT under ambient conditions with high hole/electron mobilities and a gain value of up to 3.01/3.84 cm2 V-1 s-1 and 171, respectively, which are among the best performances in ambipolar polymer organic thin-film transistors and associated complementary-like circuits, especially in top-gate device configuration with low-cost glass as substrates. These results demonstrate that the "triple-acceptors architecture" strategy is an effective way for designing high-performance ambipolar polymer semiconductors.Entities:
Keywords: ambipolar polymer semiconductor; effective mass; molecular architecture; molecular packing; organic thin-film transistor
Year: 2018 PMID: 29947133 DOI: 10.1002/adma.201801951
Source DB: PubMed Journal: Adv Mater ISSN: 0935-9648 Impact factor: 30.849